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PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24

After a conditioning period, seed dormancy in obligate root parasitic plants is released by a chemical stimulus secreted by the roots of host plants. Using Phelipanche ramosa as the model, experiments conducted in this study showed that seeds require a conditioning period of at least 4 d to be recep...

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Autores principales: Lechat, Marc-Marie, Pouvreau, Jean-Bernard, Péron, Thomas, Gauthier, Mathieu, Montiel, Grégory, Véronési, Christophe, Todoroki, Yasushi, Le Bizec, Bruno, Monteau, Fabrice, Macherel, David, Simier, Philippe, Thoiron, Séverine, Delavault, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431000/
https://www.ncbi.nlm.nih.gov/pubmed/22859674
http://dx.doi.org/10.1093/jxb/ers189
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author Lechat, Marc-Marie
Pouvreau, Jean-Bernard
Péron, Thomas
Gauthier, Mathieu
Montiel, Grégory
Véronési, Christophe
Todoroki, Yasushi
Le Bizec, Bruno
Monteau, Fabrice
Macherel, David
Simier, Philippe
Thoiron, Séverine
Delavault, Philippe
author_facet Lechat, Marc-Marie
Pouvreau, Jean-Bernard
Péron, Thomas
Gauthier, Mathieu
Montiel, Grégory
Véronési, Christophe
Todoroki, Yasushi
Le Bizec, Bruno
Monteau, Fabrice
Macherel, David
Simier, Philippe
Thoiron, Séverine
Delavault, Philippe
author_sort Lechat, Marc-Marie
collection PubMed
description After a conditioning period, seed dormancy in obligate root parasitic plants is released by a chemical stimulus secreted by the roots of host plants. Using Phelipanche ramosa as the model, experiments conducted in this study showed that seeds require a conditioning period of at least 4 d to be receptive to the synthetic germination stimulant GR24. A cDNA-AFLP procedure on seeds revealed 58 transcript-derived fragments (TDFs) whose expression pattern changed upon GR24 treatment. Among the isolated TDFs, two up-regulated sequences corresponded to an abscisic acid (ABA) catabolic gene, PrCYP707A1, encoding an ABA 8'-hydroxylase. Using the rapid amplification of cDNA ends method, two full-length cDNAs, PrCYP707A1 and PrCYP707A2, were isolated from seeds. Both genes were always expressed at low levels during conditioning during which an initial decline in ABA levels was recorded. GR24 application after conditioning triggered a strong up-regulation of PrCYP707A1 during the first 18h, followed by an 8-fold decrease in ABA levels detectable 3 d after treatment. In situ hybridization experiments on GR24-treated seeds revealed a specific PrCYP707A1 mRNA accumulation in the cells located between the embryo and the micropyle. Abz-E2B, a specific inhibitor of CYP707A enzymes, significantly impeded seed germination, proving to be a non-competitive antagonist of GR24 with reversible inhibitory activity. These results demonstrate that P. ramosa seed dormancy release relies on ABA catabolism mediated by the GR24-dependent activation of PrCYP707A1. In addition, in situ hybridization corroborates the putative location of cells receptive to the germination stimulants in seeds. Abbreviations: ABA: abscisic acid Abz: abscinazole AEC: adenylate energy charge AFLP: amplified fragment length polymorphism RACE: rapid amplification of cDNA ends SL: strigolactone TDF: transcript-derived fragment
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spelling pubmed-34310002012-08-30 PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24 Lechat, Marc-Marie Pouvreau, Jean-Bernard Péron, Thomas Gauthier, Mathieu Montiel, Grégory Véronési, Christophe Todoroki, Yasushi Le Bizec, Bruno Monteau, Fabrice Macherel, David Simier, Philippe Thoiron, Séverine Delavault, Philippe J Exp Bot Research Paper After a conditioning period, seed dormancy in obligate root parasitic plants is released by a chemical stimulus secreted by the roots of host plants. Using Phelipanche ramosa as the model, experiments conducted in this study showed that seeds require a conditioning period of at least 4 d to be receptive to the synthetic germination stimulant GR24. A cDNA-AFLP procedure on seeds revealed 58 transcript-derived fragments (TDFs) whose expression pattern changed upon GR24 treatment. Among the isolated TDFs, two up-regulated sequences corresponded to an abscisic acid (ABA) catabolic gene, PrCYP707A1, encoding an ABA 8'-hydroxylase. Using the rapid amplification of cDNA ends method, two full-length cDNAs, PrCYP707A1 and PrCYP707A2, were isolated from seeds. Both genes were always expressed at low levels during conditioning during which an initial decline in ABA levels was recorded. GR24 application after conditioning triggered a strong up-regulation of PrCYP707A1 during the first 18h, followed by an 8-fold decrease in ABA levels detectable 3 d after treatment. In situ hybridization experiments on GR24-treated seeds revealed a specific PrCYP707A1 mRNA accumulation in the cells located between the embryo and the micropyle. Abz-E2B, a specific inhibitor of CYP707A enzymes, significantly impeded seed germination, proving to be a non-competitive antagonist of GR24 with reversible inhibitory activity. These results demonstrate that P. ramosa seed dormancy release relies on ABA catabolism mediated by the GR24-dependent activation of PrCYP707A1. In addition, in situ hybridization corroborates the putative location of cells receptive to the germination stimulants in seeds. Abbreviations: ABA: abscisic acid Abz: abscinazole AEC: adenylate energy charge AFLP: amplified fragment length polymorphism RACE: rapid amplification of cDNA ends SL: strigolactone TDF: transcript-derived fragment Oxford University Press 2012-09 2012-08-29 /pmc/articles/PMC3431000/ /pubmed/22859674 http://dx.doi.org/10.1093/jxb/ers189 Text en © The Author [2012]. Published by Oxford University Press [on behalf of the Society for Experimental Biology]. All rights reserved. For Permissions, please e-mail: journals.permissions@oup.com This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0/uk/) which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Lechat, Marc-Marie
Pouvreau, Jean-Bernard
Péron, Thomas
Gauthier, Mathieu
Montiel, Grégory
Véronési, Christophe
Todoroki, Yasushi
Le Bizec, Bruno
Monteau, Fabrice
Macherel, David
Simier, Philippe
Thoiron, Séverine
Delavault, Philippe
PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title_full PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title_fullStr PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title_full_unstemmed PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title_short PrCYP707A1, an ABA catabolic gene, is a key component of Phelipanche ramosa seed germination in response to the strigolactone analogue GR24
title_sort prcyp707a1, an aba catabolic gene, is a key component of phelipanche ramosa seed germination in response to the strigolactone analogue gr24
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431000/
https://www.ncbi.nlm.nih.gov/pubmed/22859674
http://dx.doi.org/10.1093/jxb/ers189
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